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I have following code:

<?php

        $exists_photos = $wpdb->get_results("SELECT * FROM $dsp_galleries_photos galleries, $dsp_user_albums_table albums WHERE galleries.album_id=albums.album_id AND galleries.status_id=1 AND galleries.album_id IN ($ids1) ORDER BY RAND() LIMIT 6");

         $i=0;

         foreach ($exists_photos as $user_photos) { 

            $photo_id=$user_photos->gal_photo_id;

            $album_id1=$user_photos->album_id;

            $file_name=$user_photos->image_name;

            $private=$user_photos->private_album;

            $image_path="/wp-content/uploads/dsp_media/user_photos/user_".$member_id."/album_".$album_id1."/".$file_name;

            if(($i%3)==0){

            ?>

It returns following error:

WordPress database error You have an error in your SQL syntax; check the manual that corresponds to your MySQL server version for the right syntax to use near ')' at line 1 for query SELECT COUNT(*) FROM wp_dsp_galleries_photos WHERE status_id=1 AND album_id IN () made by require('wp-blog-header.php'), require_once('wp-includes/template-loader.php'), include('/themes/ArtSee/page.php'), the_content, apply_filters('the_content'), call_user_func_array, do_shortcode, preg_replace_callback, do_shortcode_tag, call_user_func, wp_include_file, include('/plugins/dsp/profile_header.php'), include('/plugins/dsp/member_dsp_header.php'), include('/plugins/dsp/headers/view_profile_header.php'), include('/plugins/dsp/view_profile_setup.php')

Suggestions will be appreciated. Thanks

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2 Answers 2

You missed a VALUE INSIDE ():

SELECT COUNT(*) FROM wp_dsp_galleries_photos WHERE status_id=1 AND album_id IN () 

The statement: You have an error in your SQL syntax; check the manual that corresponds to your MySQL server version for the right syntax to use near ')' indicates the point of failure. I refers to the second ) in :

... album_id IN () ...

In any case your code does not show this part.

share|improve this answer
    
NomikOS, thanks. I am a somewhat loss. It is ....album_id IN ($ids1) not .album_id IN () –  user2059062 Feb 10 '13 at 16:02
SELECT * FROM $dsp_galleries_photos galleries, $dsp_user_albums_table albums 

should be

SELECT * FROM dsp_galleries_photos galleries, dsp_user_albums_table albums 

with no $ before the table name - you also should consider if you really need to select * but that won't impact the syntax of the query

share|improve this answer
    
Those are PHP variables. If you look at the error you can see that they are converted to proper table names before the SQL executes-- ie., wp_dsp_galleries_photos. That is not where the error is. –  s_ha_dum Feb 10 '13 at 15:49
    
I was always taught that you needed to escape $ signs in table names so it would either have to be something like SELECT * FROM $dsp_galleries_photos galleries or it was a typo on the part of the poster - my mistake –  bhttoan Feb 10 '13 at 15:53
    
Also the code posted doesn't actually contain the code shown in the error which was another reason I jumped on the table name –  bhttoan Feb 10 '13 at 15:54
1  
That is a double-quoted PHP string. The variables will be substituted before the MySQL database sees it. You wouldn't want to escape that unless your table name had a literal $ in it, or you would get an error. –  s_ha_dum Feb 10 '13 at 16:03
    
I have upvoted your comment but it really isn't obvious from the code whether it is a PHP string or a table name and the fact the error shown doesn't actually refer to the code posted makes it a poor question –  bhttoan Feb 10 '13 at 16:20

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